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  license: mit
 
 
 
 
 
 
 
 
 
 
 
 
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  license: mit
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+ task_categories:
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+ - text-classification
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+ language:
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+ - en
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+ tags:
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+ - emotion
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+ - complexity
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+ - readability
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+ - sentiment
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+ pretty_name: CAMEO
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+ size_categories:
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+ - 10K<n<100K
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  ---
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+ # Dataset Card for CAMEO
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+
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+ <!-- Provide a quick summary of the dataset. -->
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+
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+ Dataset to accompany the EMNLP'23 paper titled: "Misery Loves Complexity: Exploring Linguistic Complexity in the Context of Emotion Detection".
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+ ## Dataset Details
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+ 50,000 subset from the GoEmotions Dataset automatically annotated with the following linguistic complexity measures:
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+
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+ - idt: Incomplete Dependency Theory
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+ - dlt: Dependency Locality Theory
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+ - nnd: Nested-Nouns Distance
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+ - le: Left-embededness
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+ - percentage_polysyllable_words: % of polysyllable words
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+ - avg_conn_doc: Average connectives per sentence
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+ - number_of_uniq_entities: Number of unique named entities
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+ - average_word_len: Average word length
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+ - dale_word_frequency_score: DALE Word Frequency Score
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+ - avgtfidf: Average TF-IDF of all words based on the background corpus
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+ - avgll: Average Log-likelihood of all words based on the background corpus
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+ - type_token_ratio_perc: % Type-token ratio
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+
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+ Please refer to the paper for further details on the metrics or other information.
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+ For details on how the data was collected or annotated for emotions. Please refer to the original [GoEmotions dataset](https://github.com/google-research/google-research/tree/master/goemotions).